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2 | mjames | 1 | /* ---------------------------------------------------------------------- |
2 | * Copyright (C) 2010-2014 ARM Limited. All rights reserved. |
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3 | * |
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4 | * $Date: 19. March 2015 |
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5 | * $Revision: V.1.4.5 |
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6 | * |
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7 | * Project: CMSIS DSP Library |
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8 | * Title: arm_cfft_radix2_q31.c |
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9 | * |
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10 | * Description: Radix-2 Decimation in Frequency CFFT & CIFFT Fixed point processing function |
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11 | * |
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12 | * |
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13 | * Target Processor: Cortex-M4/Cortex-M3/Cortex-M0 |
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14 | * |
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15 | * Redistribution and use in source and binary forms, with or without |
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16 | * modification, are permitted provided that the following conditions |
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17 | * are met: |
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18 | * - Redistributions of source code must retain the above copyright |
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19 | * notice, this list of conditions and the following disclaimer. |
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20 | * - Redistributions in binary form must reproduce the above copyright |
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21 | * notice, this list of conditions and the following disclaimer in |
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22 | * the documentation and/or other materials provided with the |
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23 | * distribution. |
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24 | * - Neither the name of ARM LIMITED nor the names of its contributors |
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25 | * may be used to endorse or promote products derived from this |
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26 | * software without specific prior written permission. |
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27 | * |
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28 | * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS |
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29 | * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT |
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30 | * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS |
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31 | * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE |
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32 | * COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, |
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33 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, |
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34 | * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; |
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35 | * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER |
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36 | * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT |
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37 | * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN |
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38 | * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE |
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39 | * POSSIBILITY OF SUCH DAMAGE. |
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40 | * -------------------------------------------------------------------- */ |
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41 | |||
42 | #include "arm_math.h" |
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43 | |||
44 | void arm_radix2_butterfly_q31( |
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45 | q31_t * pSrc, |
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46 | uint32_t fftLen, |
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47 | q31_t * pCoef, |
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48 | uint16_t twidCoefModifier); |
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49 | |||
50 | void arm_radix2_butterfly_inverse_q31( |
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51 | q31_t * pSrc, |
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52 | uint32_t fftLen, |
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53 | q31_t * pCoef, |
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54 | uint16_t twidCoefModifier); |
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55 | |||
56 | void arm_bitreversal_q31( |
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57 | q31_t * pSrc, |
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58 | uint32_t fftLen, |
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59 | uint16_t bitRevFactor, |
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60 | uint16_t * pBitRevTab); |
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61 | |||
62 | /** |
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63 | * @ingroup groupTransforms |
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64 | */ |
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65 | |||
66 | /** |
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67 | * @addtogroup ComplexFFT |
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68 | * @{ |
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69 | */ |
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70 | |||
71 | /** |
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72 | * @details |
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73 | * @brief Processing function for the fixed-point CFFT/CIFFT. |
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74 | * @deprecated Do not use this function. It has been superseded by \ref arm_cfft_q31 and will be removed |
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75 | * @param[in] *S points to an instance of the fixed-point CFFT/CIFFT structure. |
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76 | * @param[in, out] *pSrc points to the complex data buffer of size <code>2*fftLen</code>. Processing occurs in-place. |
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77 | * @return none. |
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78 | */ |
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79 | |||
80 | void arm_cfft_radix2_q31( |
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81 | const arm_cfft_radix2_instance_q31 * S, |
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82 | q31_t * pSrc) |
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83 | { |
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84 | |||
85 | if(S->ifftFlag == 1u) |
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86 | { |
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87 | arm_radix2_butterfly_inverse_q31(pSrc, S->fftLen, |
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88 | S->pTwiddle, S->twidCoefModifier); |
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89 | } |
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90 | else |
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91 | { |
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92 | arm_radix2_butterfly_q31(pSrc, S->fftLen, |
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93 | S->pTwiddle, S->twidCoefModifier); |
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94 | } |
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95 | |||
96 | arm_bitreversal_q31(pSrc, S->fftLen, S->bitRevFactor, S->pBitRevTable); |
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97 | } |
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98 | |||
99 | /** |
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100 | * @} end of ComplexFFT group |
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101 | */ |
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102 | |||
103 | void arm_radix2_butterfly_q31( |
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104 | q31_t * pSrc, |
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105 | uint32_t fftLen, |
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106 | q31_t * pCoef, |
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107 | uint16_t twidCoefModifier) |
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108 | { |
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109 | |||
110 | unsigned i, j, k, l, m; |
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111 | unsigned n1, n2, ia; |
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112 | q31_t xt, yt, cosVal, sinVal; |
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113 | q31_t p0, p1; |
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114 | |||
115 | //N = fftLen; |
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116 | n2 = fftLen; |
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117 | |||
118 | n1 = n2; |
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119 | n2 = n2 >> 1; |
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120 | ia = 0; |
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121 | |||
122 | // loop for groups |
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123 | for (i = 0; i < n2; i++) |
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124 | { |
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125 | cosVal = pCoef[ia * 2]; |
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126 | sinVal = pCoef[(ia * 2) + 1]; |
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127 | ia = ia + twidCoefModifier; |
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128 | |||
129 | l = i + n2; |
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130 | xt = (pSrc[2 * i] >> 1u) - (pSrc[2 * l] >> 1u); |
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131 | pSrc[2 * i] = ((pSrc[2 * i] >> 1u) + (pSrc[2 * l] >> 1u)) >> 1u; |
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132 | |||
133 | yt = (pSrc[2 * i + 1] >> 1u) - (pSrc[2 * l + 1] >> 1u); |
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134 | pSrc[2 * i + 1] = |
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135 | ((pSrc[2 * l + 1] >> 1u) + (pSrc[2 * i + 1] >> 1u)) >> 1u; |
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136 | |||
137 | mult_32x32_keep32_R(p0, xt, cosVal); |
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138 | mult_32x32_keep32_R(p1, yt, cosVal); |
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139 | multAcc_32x32_keep32_R(p0, yt, sinVal); |
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140 | multSub_32x32_keep32_R(p1, xt, sinVal); |
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141 | |||
142 | pSrc[2u * l] = p0; |
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143 | pSrc[2u * l + 1u] = p1; |
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144 | |||
145 | } // groups loop end |
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146 | |||
147 | twidCoefModifier <<= 1u; |
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148 | |||
149 | // loop for stage |
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150 | for (k = fftLen / 2; k > 2; k = k >> 1) |
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151 | { |
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152 | n1 = n2; |
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153 | n2 = n2 >> 1; |
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154 | ia = 0; |
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155 | |||
156 | // loop for groups |
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157 | for (j = 0; j < n2; j++) |
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158 | { |
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159 | cosVal = pCoef[ia * 2]; |
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160 | sinVal = pCoef[(ia * 2) + 1]; |
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161 | ia = ia + twidCoefModifier; |
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162 | |||
163 | // loop for butterfly |
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164 | i = j; |
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165 | m = fftLen / n1; |
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166 | do |
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167 | { |
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168 | l = i + n2; |
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169 | xt = pSrc[2 * i] - pSrc[2 * l]; |
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170 | pSrc[2 * i] = (pSrc[2 * i] + pSrc[2 * l]) >> 1u; |
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171 | |||
172 | yt = pSrc[2 * i + 1] - pSrc[2 * l + 1]; |
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173 | pSrc[2 * i + 1] = (pSrc[2 * l + 1] + pSrc[2 * i + 1]) >> 1u; |
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174 | |||
175 | mult_32x32_keep32_R(p0, xt, cosVal); |
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176 | mult_32x32_keep32_R(p1, yt, cosVal); |
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177 | multAcc_32x32_keep32_R(p0, yt, sinVal); |
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178 | multSub_32x32_keep32_R(p1, xt, sinVal); |
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179 | |||
180 | pSrc[2u * l] = p0; |
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181 | pSrc[2u * l + 1u] = p1; |
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182 | i += n1; |
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183 | m--; |
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184 | } while( m > 0); // butterfly loop end |
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185 | |||
186 | } // groups loop end |
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187 | |||
188 | twidCoefModifier <<= 1u; |
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189 | } // stages loop end |
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190 | |||
191 | n1 = n2; |
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192 | n2 = n2 >> 1; |
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193 | ia = 0; |
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194 | |||
195 | cosVal = pCoef[ia * 2]; |
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196 | sinVal = pCoef[(ia * 2) + 1]; |
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197 | ia = ia + twidCoefModifier; |
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198 | |||
199 | // loop for butterfly |
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200 | for (i = 0; i < fftLen; i += n1) |
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201 | { |
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202 | l = i + n2; |
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203 | xt = pSrc[2 * i] - pSrc[2 * l]; |
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204 | pSrc[2 * i] = (pSrc[2 * i] + pSrc[2 * l]); |
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205 | |||
206 | yt = pSrc[2 * i + 1] - pSrc[2 * l + 1]; |
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207 | pSrc[2 * i + 1] = (pSrc[2 * l + 1] + pSrc[2 * i + 1]); |
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208 | |||
209 | pSrc[2u * l] = xt; |
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210 | |||
211 | pSrc[2u * l + 1u] = yt; |
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212 | |||
213 | i += n1; |
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214 | l = i + n2; |
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215 | |||
216 | xt = pSrc[2 * i] - pSrc[2 * l]; |
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217 | pSrc[2 * i] = (pSrc[2 * i] + pSrc[2 * l]); |
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218 | |||
219 | yt = pSrc[2 * i + 1] - pSrc[2 * l + 1]; |
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220 | pSrc[2 * i + 1] = (pSrc[2 * l + 1] + pSrc[2 * i + 1]); |
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221 | |||
222 | pSrc[2u * l] = xt; |
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223 | |||
224 | pSrc[2u * l + 1u] = yt; |
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225 | |||
226 | } // butterfly loop end |
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227 | |||
228 | } |
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229 | |||
230 | |||
231 | void arm_radix2_butterfly_inverse_q31( |
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232 | q31_t * pSrc, |
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233 | uint32_t fftLen, |
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234 | q31_t * pCoef, |
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235 | uint16_t twidCoefModifier) |
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236 | { |
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237 | |||
238 | unsigned i, j, k, l; |
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239 | unsigned n1, n2, ia; |
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240 | q31_t xt, yt, cosVal, sinVal; |
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241 | q31_t p0, p1; |
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242 | |||
243 | //N = fftLen; |
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244 | n2 = fftLen; |
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245 | |||
246 | n1 = n2; |
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247 | n2 = n2 >> 1; |
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248 | ia = 0; |
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249 | |||
250 | // loop for groups |
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251 | for (i = 0; i < n2; i++) |
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252 | { |
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253 | cosVal = pCoef[ia * 2]; |
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254 | sinVal = pCoef[(ia * 2) + 1]; |
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255 | ia = ia + twidCoefModifier; |
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256 | |||
257 | l = i + n2; |
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258 | xt = (pSrc[2 * i] >> 1u) - (pSrc[2 * l] >> 1u); |
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259 | pSrc[2 * i] = ((pSrc[2 * i] >> 1u) + (pSrc[2 * l] >> 1u)) >> 1u; |
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260 | |||
261 | yt = (pSrc[2 * i + 1] >> 1u) - (pSrc[2 * l + 1] >> 1u); |
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262 | pSrc[2 * i + 1] = |
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263 | ((pSrc[2 * l + 1] >> 1u) + (pSrc[2 * i + 1] >> 1u)) >> 1u; |
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264 | |||
265 | mult_32x32_keep32_R(p0, xt, cosVal); |
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266 | mult_32x32_keep32_R(p1, yt, cosVal); |
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267 | multSub_32x32_keep32_R(p0, yt, sinVal); |
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268 | multAcc_32x32_keep32_R(p1, xt, sinVal); |
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269 | |||
270 | pSrc[2u * l] = p0; |
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271 | pSrc[2u * l + 1u] = p1; |
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272 | } // groups loop end |
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273 | |||
274 | twidCoefModifier = twidCoefModifier << 1u; |
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275 | |||
276 | // loop for stage |
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277 | for (k = fftLen / 2; k > 2; k = k >> 1) |
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278 | { |
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279 | n1 = n2; |
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280 | n2 = n2 >> 1; |
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281 | ia = 0; |
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282 | |||
283 | // loop for groups |
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284 | for (j = 0; j < n2; j++) |
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285 | { |
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286 | cosVal = pCoef[ia * 2]; |
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287 | sinVal = pCoef[(ia * 2) + 1]; |
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288 | ia = ia + twidCoefModifier; |
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289 | |||
290 | // loop for butterfly |
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291 | for (i = j; i < fftLen; i += n1) |
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292 | { |
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293 | l = i + n2; |
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294 | xt = pSrc[2 * i] - pSrc[2 * l]; |
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295 | pSrc[2 * i] = (pSrc[2 * i] + pSrc[2 * l]) >> 1u; |
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296 | |||
297 | yt = pSrc[2 * i + 1] - pSrc[2 * l + 1]; |
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298 | pSrc[2 * i + 1] = (pSrc[2 * l + 1] + pSrc[2 * i + 1]) >> 1u; |
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299 | |||
300 | mult_32x32_keep32_R(p0, xt, cosVal); |
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301 | mult_32x32_keep32_R(p1, yt, cosVal); |
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302 | multSub_32x32_keep32_R(p0, yt, sinVal); |
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303 | multAcc_32x32_keep32_R(p1, xt, sinVal); |
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304 | |||
305 | pSrc[2u * l] = p0; |
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306 | pSrc[2u * l + 1u] = p1; |
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307 | } // butterfly loop end |
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308 | |||
309 | } // groups loop end |
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310 | |||
311 | twidCoefModifier = twidCoefModifier << 1u; |
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312 | } // stages loop end |
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313 | |||
314 | n1 = n2; |
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315 | n2 = n2 >> 1; |
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316 | ia = 0; |
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317 | |||
318 | cosVal = pCoef[ia * 2]; |
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319 | sinVal = pCoef[(ia * 2) + 1]; |
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320 | ia = ia + twidCoefModifier; |
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321 | |||
322 | // loop for butterfly |
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323 | for (i = 0; i < fftLen; i += n1) |
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324 | { |
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325 | l = i + n2; |
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326 | xt = pSrc[2 * i] - pSrc[2 * l]; |
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327 | pSrc[2 * i] = (pSrc[2 * i] + pSrc[2 * l]); |
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328 | |||
329 | yt = pSrc[2 * i + 1] - pSrc[2 * l + 1]; |
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330 | pSrc[2 * i + 1] = (pSrc[2 * l + 1] + pSrc[2 * i + 1]); |
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331 | |||
332 | pSrc[2u * l] = xt; |
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333 | |||
334 | pSrc[2u * l + 1u] = yt; |
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335 | |||
336 | i += n1; |
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337 | l = i + n2; |
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338 | |||
339 | xt = pSrc[2 * i] - pSrc[2 * l]; |
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340 | pSrc[2 * i] = (pSrc[2 * i] + pSrc[2 * l]); |
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341 | |||
342 | yt = pSrc[2 * i + 1] - pSrc[2 * l + 1]; |
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343 | pSrc[2 * i + 1] = (pSrc[2 * l + 1] + pSrc[2 * i + 1]); |
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344 | |||
345 | pSrc[2u * l] = xt; |
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346 | |||
347 | pSrc[2u * l + 1u] = yt; |
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348 | |||
349 | } // butterfly loop end |
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350 | |||
351 | } |